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Dehydration, deamination and enzymatic repair of cytosine glycols from oxidized poly(dG-dC) and poly(dI-dC)

机译:氧化聚(dG-dC)和聚(dI-dC)中胞嘧啶二醇的脱水,脱氨基和酶促修复

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摘要

Cytosine glycols (5,6-dihydroxy-5,6-dihydrocytosine) are initial products of cytosine oxidation. Because these products are not stable, virtually all biological studies have focused on the stable oxidation products of cytosine, including 5-hydroxycytosine, uracil glycols and 5-hydroxyuracil. Previously, we reported that the lifetime of cytosine glycols was greatly enhanced in double-stranded DNA, thus implicating these products in DNA repair and mutagenesis. In the present work, cytosine and uracil glycols were generated in double-stranded alternating co-polymers by oxidation with KMnO4. The half-life of cytosine glycols in poly(dG-dC) was 6.5 h giving a ratio of dehydration to deamination of 5:1. At high substrate concentrations, the excision of cytosine glycols from poly(dG-dC) by purified endonuclease III was comparable to that of uracil glycols, whereas the excision of these substrates was 5-fold greater than that of 5-hydroxycytosine. Kinetic studies revealed that the Vmax was several fold higher for the excision of cytosine glycols compared to 5-hydroxycytosine. In contrast to cytosine glycols, uracil glycols did not undergo detectable dehydration to 5-hydroxyuracil. Replacing poly(dG-dC) for poly(dI-dC) gave similar results with respect to the lifetime and excision of cytosine glycols. This work demonstrates the formation of cytosine glycols in DNA and their removal by base excision repair.
机译:胞嘧啶二醇(5,6-二羟基-5,6-二氢胞嘧啶)是胞嘧啶氧化的初始产物。由于这些产物不稳定,因此几乎所有生物学研究都集中于胞嘧啶的稳定氧化产物,包括5-羟基胞嘧啶,尿嘧啶二醇和5-羟基尿嘧啶。以前,我们报道了在双链DNA中胞嘧啶二醇的寿命大大延长,从而使这些产物参与了DNA修复和诱变。在目前的工作中,通过用KMnO4氧化在双链交替共聚物中生成了胞嘧啶和尿嘧啶二醇。胞嘧啶二醇在聚(dG-dC)中的半衰期为6.5小时,脱水/脱氨比为5:1。在高底物浓度下,纯化的核酸内切酶III从聚(dG-dC)切除胞嘧啶二醇与尿嘧啶二醇相当,而这些底物的切除率是5-羟基胞嘧啶的5倍。动力学研究表明,与5-羟基胞嘧啶相比,胞嘧啶二醇切除的Vmax高出几倍。与胞嘧啶二醇相反,尿嘧啶二醇未经历可检测的脱水成5-羟基尿嘧啶。就胞嘧啶二醇的寿命和切除而言,用聚(dI-dC)代替聚(dG-dC)得到了相似的结果。这项工作证明了DNA中胞嘧啶二醇的形成以及通过碱基切除修复将其去除的过程。

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